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Tantalum-tungsten alloy photonic crystals for high-temperature energy conversion systems

机译:用于高温能量转换系统的钽钨合金光子晶体

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A tantalum tungsten (Ta-W) solid solution alloy, Ta 3% W, based 2D photonic crystal (PhC) was designed and fabricated for high-temperature energy conversion applications. Metallic PhCs are promising as high performance selective thermal emitters for solid-state thermal-to-electricity energy conversion concepts including thermophotovoltaic (TPV) energy conversion, as well as highly selective solar absorbers/emitters for solar thermal and solar TPV applications due to the ability to tune their spectral properties and achieve highly selective emission. The mechanical and thermal stability of the substrate was characterized as well as the optical properties of the fabricated PhC. The Ta 3% W alloy presents advantages compared to the non-alloys as it combines the better high-temperature thermo-mechanical properties of W with the more compliant material properties of Ta, allowing for a direct system integration path of the PhC as selective emitter/absorber into a spectrum of energy conversion systems. Furthermore, the thermo-mechanical properties can be fine-tuned by the W content. A 2D PhC was designed to have high spectral selectivity matched to the bandgap of a TPV cell using numerical simulations and fabricated using standard semiconductor processes. The emittance of the Ta 3% W PhC was obtained from near-normal reflectance measurements at room temperature before and after annealing at 1200℃ for 24h in vacuum with a protective coating of 40nm HfO_2, showing high selectivity in agreement with simulations. SEM images of the cross section of the PhC prepared by FIB confirm the structural stability of the PhC after anneal, i.e. the coating effectively prevented structural degradation due to surface diffusion.
机译:设计并制造了钽钨(Ta-W)固溶合金Ta 3%W,基于2D光子晶体(PhC),用于高温能量转换应用。金属PhC有望成为固态热电能量转换概念(包括热光电(TPV)能量转换)以及用于太阳能热和太阳能TPV应用的高选择性太阳能吸收器/发射器的高性能选择性热发射器调整其光谱特性并实现高度选择性的发射。表征了基材的机械和热稳定性以及所制备PhC的光学性质。 Ta 3%W合金与非合金相比具有优势,因为它结合了W的更好的高温热机械性能和Ta的更柔顺的材料性能,从而允许PhC作为选择性发射极的直接系统集成路径/吸收器进入一系列能量转换系统。此外,可以通过W含量来微调热机械性能。使用数值模拟设计二维二维PhC,使其具有与TPV电池的带隙匹配的高光谱选择性,并使用标准的半导体工艺制造。 Ta 3%W PhC的发射率是通过在室温和1200℃下真空退火24h,并在40nm HfO_2的保护涂层下于室温下进行近乎正常的反射测量得到的,显示出高选择性,与模拟结果一致。 FIB制备的PhC横截面的SEM图像证实了退火后PhC的结构稳定性,即涂层有效地防止了由于表面扩散引起的结构退化。

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